I'm trying to prepare data for a graph using LINQ.

The problem that i cant solve is how to calculate the "difference to previous.

the result I expect is

ID= 1, Date= Now, DiffToPrev= 0;

ID= 1, Date= Now+1, DiffToPrev= 3;

ID= 1, Date= Now+2, DiffToPrev= 7;

ID= 1, Date= Now+3, DiffToPrev= -6;

etc...

Can You help me create such a query ?

using System;
using System.Collections.Generic;
using System.Linq;
using System.Text;

namespace ConsoleApplication1
{
    public class MyObject
    {
        public int ID { get; set; }
        public DateTime Date { get; set; }
        public int Value { get; set; }
    }

    class Program
    {
        static void Main()
        {
               var list = new List<MyObject>
          {
            new MyObject {ID= 1,Date = DateTime.Now,Value = 5},
            new MyObject {ID= 1,Date = DateTime.Now.AddDays(1),Value = 8},
            new MyObject {ID= 1,Date = DateTime.Now.AddDays(2),Value = 15},
            new MyObject {ID= 1,Date = DateTime.Now.AddDays(3),Value = 9},
            new MyObject {ID= 1,Date = DateTime.Now.AddDays(4),Value = 12},
            new MyObject {ID= 1,Date = DateTime.Now.AddDays(5),Value = 25},
            new MyObject {ID= 2,Date = DateTime.Now,Value = 10},
            new MyObject {ID= 2,Date = DateTime.Now.AddDays(1),Value = 7},
            new MyObject {ID= 2,Date = DateTime.Now.AddDays(2),Value = 19},
            new MyObject {ID= 2,Date = DateTime.Now.AddDays(3),Value = 12},
            new MyObject {ID= 2,Date = DateTime.Now.AddDays(4),Value = 15},
            new MyObject {ID= 2,Date = DateTime.Now.AddDays(5),Value = 18}

        };

            Console.WriteLine(list);   

            Console.ReadLine();
        }
    }
}
up vote 55 down vote accepted

One option (for LINQ to Objects) would be to create your own LINQ operator:

// I don't like this name :(
public static IEnumerable<TResult> SelectWithPrevious<TSource, TResult>
    (this IEnumerable<TSource> source,
     Func<TSource, TSource, TResult> projection)
{
    using (var iterator = source.GetEnumerator())
    {
        if (!iterator.MoveNext())
        {
             yield break;
        }
        TSource previous = iterator.Current;
        while (iterator.MoveNext())
        {
            yield return projection(previous, iterator.Current);
            previous = iterator.Current;
        }
    }
}

This enables you to perform your projection using only a single pass of the source sequence, which is always a bonus (imagine running it over a large log file).

Note that it will project a sequence of length n into a sequence of length n-1 - you may want to prepend a "dummy" first element, for example. (Or change the method to include one.)

Here's an example of how you'd use it:

var query = list.SelectWithPrevious((prev, cur) =>
     new { ID = cur.ID, Date = cur.Date, DateDiff = (cur.Date - prev.Date).Days) });

Note that this will include the final result of one ID with the first result of the next ID... you may wish to group your sequence by ID first.

  • This seems like a right answer, but i cant figure how to use it. – Marty Sep 10 '10 at 8:54
  • I guess this one would be more efficient than Branimir's answer, right ? – Marty Sep 10 '10 at 9:03
  • @Martynas: It's more general than Branimir's answer, and more efficient than Felix's. – Jon Skeet Sep 10 '10 at 9:33
  • 2
    That's a nice little function Jon; sweet and simple. – Doctor Jones Dec 16 '10 at 12:09
  • 1
    @NetMage: IEnumerator<T> does implement IDisposable, and you should always use it - just like foreach does implicitly. The non-generic version doesn't. – Jon Skeet Mar 15 at 20:14

Use index to get previous object:

   var LinqList = list.Select( 
       (myObject, index) => 
          new { 
            ID = myObject.ID, 
            Date = myObject.Date, 
            Value = myObject.Value, 
            DiffToPrev = (index > 0 ? myObject.Value - list[index - 1].Value : 0)
          }
   );
  • 1
    Thanx :) That simple :) cool :) – Marty Sep 10 '10 at 8:57
  • @Martynas: Note that this isn't very general purpose though - it only works in scenarios where you can index into the collection. – Jon Skeet Sep 10 '10 at 9:34
  • @Martynas Thanks @Jon Skeet You are right, but it is simple – Branimir Sep 10 '10 at 13:50
  • 2
    @JonSkeet The OP has a list and didn't ask for general purpose, so this a superior answer. – Jim Balter Jun 21 '13 at 4:55
  • 1
    @JimBalter: The purpose of Stack Overflow is to serve more than just the OP's question. Sometimes it makes sense to stick strictly to the bounds of what's required (although I'd at least have formatted this code to avoid scrolling), but other times I think it's helpful to give more generally-useful approaches. – Jon Skeet Jun 21 '13 at 5:47

In C#4 you can use the Zip method in order to process two items at a time. Like this:

        var list1 = list.Take(list.Count() - 1);
        var list2 = list.Skip(1);
        var diff = list1.Zip(list2, (item1, item2) => ...);

Modification of Jon Skeet's answer to not skip the first item:

public static IEnumerable<TResult> SelectWithPrev<TSource, TResult>
    (this IEnumerable<TSource> source, 
    Func<TSource, TSource, bool, TResult> projection)
{
    using (var iterator = source.GetEnumerator())
    {
        var isfirst = true;
        var previous = default(TSource);
        while (iterator.MoveNext())
        {
            yield return projection(iterator.Current, previous, isfirst);
            isfirst = false;
            previous = iterator.Current;
        }
    }
}

A few key differences... passes a third bool parameter to indicate if it is the first element of the enumerable. I also switched the order of the current/previous parameters.

Here's the matching example:

var query = list.SelectWithPrevious((cur, prev, isfirst) =>
    new { 
        ID = cur.ID, 
        Date = cur.Date, 
        DateDiff = (isfirst ? cur.Date : cur.Date - prev.Date).Days);
    });

Yet another mod on Jon Skeet's version (thanks for your solution +1). Except this is returning an enumerable of tuples.

public static IEnumerable<Tuple<T, T>> Intermediate<T>(this IEnumerable<T> source)
{
    using (var iterator = source.GetEnumerator())
    {
        if (!iterator.MoveNext())
        {
            yield break;
        }
        T previous = iterator.Current;
        while (iterator.MoveNext())
        {
            yield return new Tuple<T, T>(previous, iterator.Current);
            previous = iterator.Current;
        }
    }
}

This is NOT returning the first because it's about returning the intermediate between items.

use it like:

public class MyObject
{
    public int ID { get; set; }
    public DateTime Date { get; set; }
    public int Value { get; set; }
}

var myObjectList = new List<MyObject>();

// don't forget to order on `Date`

foreach(var deltaItem in myObjectList.Intermediate())
{
    var delta = deltaItem.Second.Offset - deltaItem.First.Offset;
    // ..
}

OR

var newList = myObjectList.Intermediate().Select(item => item.Second.Date - item.First.Date);

OR (like jon shows)

var newList = myObjectList.Intermediate().Select(item => new 
{ 
    ID = item.Second.ID, 
    Date = item.Second.Date, 
    DateDiff = (item.Second.Date - item.First.Date).Days
});
  • Which Pair are you using? I don't see a public one in .Net? – NetMage Mar 15 at 19:46
  • @NetMage My bad, you can replace it by Tuple. I've changed it. Thanks you. – J. van Langen Mar 16 at 7:44

Further to Felix Ungman's post above, below is an example of how you can achieve the data you need making use of Zip():

        var diffs = list.Skip(1).Zip(list,
            (curr, prev) => new { CurrentID = curr.ID, PreviousID = prev.ID, CurrDate = curr.Date, PrevDate = prev.Date, DiffToPrev = curr.Date.Day - prev.Date.Day })
            .ToList();

        diffs.ForEach(fe => Console.WriteLine(string.Format("Current ID: {0}, Previous ID: {1} Current Date: {2}, Previous Date: {3} Diff: {4}",
            fe.CurrentID, fe.PreviousID, fe.CurrDate, fe.PrevDate, fe.DiffToPrev)));

Basically, you are zipping two versions of the same list but the first version (the current list) begins at the 2nd element in the collection, otherwise a difference would always differ the same element, giving a difference of zero.

I hope this makes sense,

Dave

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